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Philips AI/ML Engineer 
India, Karnataka 
373536236

19.11.2024
AI/ML Engineer
Job Description
  • Design and Development:

  • Designs, builds, and deploys machine learning models.

  • Develops algorithms that can learn and make predictions or decisions.

  • Conducts model training, evaluation, and tuning to achieveoptimalresults.

  • Implementation:

  • Implements machine learning models into production environments, ensuring they meet medical device regulatory standards.

  • Monitors andmaintainsthe performance of deployed models, focusing on patient safety and compliance.

  • Collaboration and Documentation:

  • Collaborates with data scientists to refine and improve model accuracy within clinical settings.

  • Writes detailed documentation for machine learning algorithms, model training, and evaluation processes, ensuring clarity for regulatory audits.

  • Details model deployment workflows and maintenance procedures, including compliance checks.

  • Testing and Validation:

  • Conducts extensive testing of machine learning models, including unit tests and integration tests, tovalidateclinical efficacy and safety.

  • Validates models in deployment environments (e.g., real-world clinical settings) to ensure they perform as expected under real-world conditions.

  • Conducts root cause analysis for model performance drops or inconsistencies, with a focus on clinical outcomes.

  • Monitoring and Improvement:

  • Monitors models post-deployment for drift and retrains them as necessary tomaintainclinical performance and safety.

  • Debugs problems in machine learning algorithms, training processes, and model deployment, with an emphasis on patient safety and regulatory compliance.

  • Implements solutions to fix bugs,optimizemodel training, and improve deployment robustness, adhering to medical device standards.

  • Regulatory Compliance and Risk Management:

  • Ensures all machine learning development and deployment effortscomply withrelevant regulations (e.g., FDA, MDR, ISO 13485, ISO 14971).

  • Participates in risk assessments,identifyingand mitigating potential risks associated with the machine learning model.

  • Supports the creation of submission documents necessary for regulatory approvals.

  • Ethical and Privacy Considerations:

  • complying withdata protection regulations such as GDPR and HIPAA.

  • Monitors for biases in the machine learning models to ensureequitableand unbiased patient care.

Onsite roles require full-time presence in the company’s facilities.
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